WO2002001867A1 - Set-top box connectable to a digital video recorder via an auxiliary interface - Google Patents
Set-top box connectable to a digital video recorder via an auxiliary interface Download PDFInfo
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- WO2002001867A1 WO2002001867A1 PCT/US2001/019937 US0119937W WO0201867A1 WO 2002001867 A1 WO2002001867 A1 WO 2002001867A1 US 0119937 W US0119937 W US 0119937W WO 0201867 A1 WO0201867 A1 WO 0201867A1
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- Prior art keywords
- video
- top box
- recorder
- interface
- digital
- Prior art date
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- 230000004044 response Effects 0.000 claims abstract description 43
- 238000004891 communication Methods 0.000 claims description 15
- 239000002131 composite material Substances 0.000 claims description 13
- 230000006835 compression Effects 0.000 claims description 5
- 238000007906 compression Methods 0.000 claims description 5
- 230000001360 synchronised effect Effects 0.000 claims description 3
- 230000006870 function Effects 0.000 description 5
- 238000010586 diagram Methods 0.000 description 4
- 238000005516 engineering process Methods 0.000 description 4
- 230000005540 biological transmission Effects 0.000 description 2
- 230000000977 initiatory effect Effects 0.000 description 2
- 238000000034 method Methods 0.000 description 1
- 239000000203 mixture Substances 0.000 description 1
Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N21/00—Selective content distribution, e.g. interactive television or video on demand [VOD]
- H04N21/40—Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
- H04N21/41—Structure of client; Structure of client peripherals
- H04N21/426—Internal components of the client ; Characteristics thereof
- H04N21/42661—Internal components of the client ; Characteristics thereof for reading from or writing on a magnetic storage medium, e.g. hard disk drive
- H04N21/42669—Internal components of the client ; Characteristics thereof for reading from or writing on a magnetic storage medium, e.g. hard disk drive the medium being removable
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N21/00—Selective content distribution, e.g. interactive television or video on demand [VOD]
- H04N21/40—Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
- H04N21/41—Structure of client; Structure of client peripherals
- H04N21/4104—Peripherals receiving signals from specially adapted client devices
- H04N21/4135—Peripherals receiving signals from specially adapted client devices external recorder
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N21/00—Selective content distribution, e.g. interactive television or video on demand [VOD]
- H04N21/40—Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
- H04N21/41—Structure of client; Structure of client peripherals
- H04N21/426—Internal components of the client ; Characteristics thereof
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N21/00—Selective content distribution, e.g. interactive television or video on demand [VOD]
- H04N21/40—Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
- H04N21/43—Processing of content or additional data, e.g. demultiplexing additional data from a digital video stream; Elementary client operations, e.g. monitoring of home network or synchronising decoder's clock; Client middleware
- H04N21/436—Interfacing a local distribution network, e.g. communicating with another STB or one or more peripheral devices inside the home
- H04N21/43622—Interfacing an external recording device
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N5/00—Details of television systems
- H04N5/76—Television signal recording
- H04N5/765—Interface circuits between an apparatus for recording and another apparatus
- H04N5/775—Interface circuits between an apparatus for recording and another apparatus between a recording apparatus and a television receiver
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N21/00—Selective content distribution, e.g. interactive television or video on demand [VOD]
- H04N21/40—Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
- H04N21/47—End-user applications
Definitions
- the present invention relates to information storage and display systems utilizing rotating storage drives, and more particularly, to video recording systems that record video data streams.
- Digital video recorders provide the capability of concurrently recording incoming streaming video data using hard disk drive technology and playing back previously recorded video data.
- a digital video recorder receives incoming streaming video data from the output interface of a standard set-top box configured to receive the broadcast signals from a multiple-service operator (MSO), such as a cable provider, and the output of the digital video recorder is transmitted directly to a display device, such as a television.
- MSO multiple-service operator
- Such standard set-top boxes typically have only one input interface and one output interface.
- the digital video recorder transmits to the display device either the incoming streaming video data from the output of the set-top box or the previously recorded video data.
- a set-top box In order to view digital broadcast channels using a standard television, a set-top box must convert the input digital broadcast channels into output video signals which conform to a standard fo ⁇ nat for composite video, such as the National Television Standards Committee (NTSC) standard.
- This standard output format is generated by various components in the set-top box, such as a transport demultiplexer ("DEMUX"), an MPEG decoder, and an NTSC encoder.
- the output from the set-top box may contain information from an on-screen display module. This information may represent programming information.
- the information may also list specialty capabilities such as picture-in-picture, which the user can enable.
- a digital video recorder compatible with such a configuration must convert the NTSC composite video received from the set-top box back into digital form for storage, and then reconvert again to NTSC composite video to play back the stored video signals. Therefore, just as the set-top box did, the digital video recorder requires a transport DEMUX, an MPEG decoder, and an NTSC encoder, which effectively duplicate components and functions of the set-top box.
- currently available digital video recorders also include a standard input interface that receives the output from the set-top box, and a modem that is configured to receive electronic program guide information from the MSO. Both the input interface and the modem of the digital video recorder duplicate components or functions found in currently available set-top boxes.
- the present invention may be regarded as a set-top box connectable to a digital video recorder that includes at least one recorder interface that supports connection of the digital video recorder to the set-top box, and a disk that stores a selected video segment.
- the digital video recorder has a video data stream manager that, in response to a real-time video signal, provides a first video stream to store the selected video segment on the disk, and that, in response to a command from the set-top box that initiates a playback interval, receives a second video stream based on the selected video segment stored on the disk to generate a recorded video signal.
- the digital video recorder is configured to (a) continuously receive the real-time video signal from the set-top box, and (b) provide the recorded video signal to the set-top box during the playback interval.
- the set-top box comprises a video input interface that receives a broadcast signal to generate the real-time video signal, and a video output interface that provides an output video data stream to a display device.
- the set-top box further comprises a microprocessor that recognizes connection of the digital video recorder to the set-top box, and that, in response to user input, generates the command that initiates the playback interval.
- the set-top box further comprises at least one auxiliary interface that supports connection of the set-top box to the at least one recorder interface of the digital video recorder, the at least one auxiliary interface continuously providing the real-time video signal to the digital video recorder subsequent to the microprocessor recognizing connection of the digital video recorder to the set-top box.
- the set-top box further comprises a multiplexer, coupled to the video output interface and the microprocessor, which selects the real-time video signal during a real-time interval and selects the recorded video signal during the playback interval to generate the output video data stream that is provided to the display device.
- Figure 1 schematically illustrates a set-top box in accordance with an embodiment of the present invention, the set-top box connectable to a recorder interface of a digital video recorder that, in response to a real-time video signal, stores a selected video stream on a disk, and that, in response to a command from the set-top box that initiates a playback interval, provides a recorded video signal to the set-top box during the playback interval.
- Figure 2 schematically illustrates an exemplary embodiment of the present invention wherein the set-top box and digital video recorder are configured to be compatible with digital video programming.
- Figure 3 schematically illustrates an exemplary embodiment of the present invention wherein the set-top box and digital video recorder are configured to be compatible with analog video programming.
- Figure 4 is a flow diagram in accordance with an embodiment of the present invention, in which the set-top box is connectable to a recorder interface of a digital video recorder that stores a selected video stream on a disk, and that provides a recorded video signal to the set- top box during the playback interval.
- the set-top box 100 is connectable to a digital video recorder 200 that includes at least one recorder interface 210 that supports connection of the digital video recorder 200 to the set-top box 100, and a disk 220 that stores a selected video segment.
- the digital video recorder 200 has a video data stream manager 230 that, in response to a real-time video signal 106, provides a first video stream 222 to store the selected video segment on the disk 220, and that, in response to a command from the set-top box 100 that initiates a playback interval, receives a second video stream 223 based on the selected video segment stored on the disk 220 to generate a recorded video signal 108.
- the digital video recorder 200 is configured to (a) continuously receive the real-time video signal 106 from the set-top box 100, and (b) provide the recorded video signal 108 to the set-top box 100 during the playback interval.
- the set-top box 100 comprises a video input interface 110 that receives a broadcast signal 102 to generate the real-time video signal 106, and a video output interface 120 that provides an output video data stream 104 to a display device 300.
- the set-top box 100 further comprises a microprocessor 140 that recognizes connection of the digital video recorder 200 to the set-top box 100, and that, in response to user input 142, generates the command that initiates the playback interval.
- the set-top box 100 further comprises at least one auxiliary interface 130 that supports connection of the set-top box 100 to the recorder interface 210 of the digital video recorder 200, the auxiliary interface 130 continuously providing the real-time video signal 106 to the digital video recorder 200 subsequent to the microprocessor 140 recognizing connection of the digital video recorder 200 to the set-top box 100.
- the set-top box 100 further comprises a multiplexer 150, coupled to the video output interface 120 and the microprocessor 140, which selects the real-time video signal 106 during a real-time interval and selects the recorded video signal 108 during the playback interval to generate the output video data stream 104 that is provided to the display device 300.
- the broadcast signal 102 is transmitted from a multiple-service operator, also known as an MSO.
- MSOs are video data service providers that supply video programming to multiple users. Examples of MSOs include, but are not limited to, cable television systems and satellite systems.
- the broadcast signal 102 can be received from UHF or VHF broadcast signals using an antenna.
- the broadcast signal 102 is typically in the form of analog rf signals containing video programming from multiple channels, and it may carry the video programming in analog or digital form.
- the microprocessor 140 of the set-top box 100 controls the operation of both the set-top box 100 and the digital video recorder 200 in response to user input 142 and electronic program guide information 144.
- the microprocessor 140 recognizes the connection of the digital video recorder 200 to the set-top box 100 and receives information regarding the first video stream 222 provided by the video stream manager 230 in response to the real-time video signal 106 to store the selected video segment on the disk 220.
- the microprocessor 140 also commands the video data stream manager 230 to receive the second video stream 223 based on the selected video segment stored on the disk 220 during a playback interval initiated by the user input 142.
- the microprocessor 140 determines whether the real-time video signal 106 or the recorded video signal 108 is used to generate the output video data stream 104 provided to the display device 300. Times at which the real-time video signal 106 is used are denoted as real-time intervals, and times at which the recorded video signal 108 is used are denoted as playback intervals.
- the user input 142 includes commands from the user to control various operation parameters of the set-top box 100 and the digital video recorder 200, such as record, playback, and display commands, hi certain embodiments, the user input 142 includes the user turning on the set-top box 100 or the digital video recorder 200. Alternatively, the user input 142 is a playback command.
- the user input 142 is generated by the user using an appropriate communication technology, such as remote control devices or keypad devices. Persons skilled in the art are able to select an appropriate communication technology for the user to generate the user input 142.
- the electronic program guide information 144 contains information regarding the broadcast schedules from various broadcast channels.
- the electronic program guide information 144 is a database containing information regarding the broadcast schedules from various broadcast channels. This information is typically expressed in the form of a program grid with columns denoting the time periods, and ' with separate rows for each of the available broadcast channels.
- the electronic program guide information 144 is communicated to the microprocessor 140 via a separate input channel (e.g., via a phone line connection).
- the electronic program guide information 144 is received from the broadcast signal 102.
- the electronic program guide information 144 is temporarily stored in memory.
- the memory may be dedicated flash memory within the set-top box 100 or the digital video recorder 200.
- the memory may also be a portion of the disk 220 of the digital video recorder 200.
- the electronic program guide information 144 is communicated to the user by displaying it directly on the display device 300 being viewed by the user. The user may then provide appropriate user input 142 to the microprocessor 140, which uses the electronic program guide information 144 to generate appropriate commands. Persons skilled in the art are able to select an appropriate configuration of the electronic program guide information 144 and the method of communicating its information to both the user and the microprocessor 140 compatible with the present invention.
- FIG. 2 schematically illustrates one embodiment of the present invention compatible with a digital programming channel. Note that other embodiments of the present invention are compatible with analog programming channels, or both analog and digital programming channels.
- the video input interface 110 comprises a video tuner 112 that receives the broadcast signal 102, a quadrature amplitude modulation (QAM) demodulator 113, and a conditional access module 114. In response to commands from the microprocessor 140 in response to the user input 142, the video tuner 112 selects one transponder signal from the multiple transponder signals contained in the broadcast signal 102, and transmits the selected transponder signal to the QAM demodulator 113, which converts the analog rf signal into a digital signal.
- QAM quadrature amplitude modulation
- This digital signal corresponding to the selected transponder signal is a digitally-formatted video data stream compressed under an MPEG (Motion Pictures Experts Group) standard, such as MPEG-2 or MPEG-4, and is transmitted to the conditional access module 114.
- MPEG Motion Pictures Experts Group
- the selected transponder signal is compressed with other compression standards, including but not limited to, wavelet compression, motion JPEG compression, and DV25 compression.
- This digital signal contains approximately six separate digital video channels, and the conditional access module 114 selects one of these digital video channels in response to commands from the microprocessor 140 in response to the user input 142, and generates a compressed single program transport stream representation of the real-time video signal 106 that is transmitted to the multiplexer 150 and to the auxiliary interface 130.
- the microprocessor 140 commands the multiplexer 150 to transmit the real-time video signal 106 from the conditional access module 114 to the video output interface 120.
- the video output interface 120 comprises a transport demultiplexer ("DEMUX") / MPEG decoder 122, an on-screen display (OSD) module 124 comprising a display multiplexer, and an NTSC encoder 126.
- the transport DEMUX / MPEG decoder 122 sorts out and synchronizes the compressed single program transport stream representation of the real-time video signal 106 from the multiplexer 150, discarding unneeded MPEG packets and generating a decompressed digital signal transmitted to the OSD module 124.
- the OSD module 124 can mix text, graphics, or additional video images selected by its display multiplexer with the decompressed digital signal from the transport DEMUX / MPEG decoder 122 to generate digital signals containing electronic program guide information 144, system status information, picture-in-picture, or other specialty displays requested by the user.
- the output video data stream 104 generated by the NTSC encoder 126 in response to the digital signal from the OSD module 124 is then transmitted to the display device 300, typically a television.
- the NTSC encoder 126 is replaced by an encoder compatible with another standard composite video format, including but not limited to, PAL or RGB.
- the compressed single program transport stream representation of the real-time video signal 106 from the conditional access module 114 is also transmitted to the auxiliary interface 130.
- the microprocessor 140 communicates with the video data stream manager 230 of the digital video recorder 200 via the auxiliary interface 130 and the recorder interface 210.
- the microprocessor 140 Upon recognizing connection of the digital video recorder 200 to the set-top box 100, the microprocessor 140 commands the auxiliary interface 130 to continuously transmit the real-time video signal 106 to the recorder interface 210 of the digital video recorder 200.
- the auxiliary interface 130 supports isochronous communication compatible with the IEEE 1394 standard, which is described in the "IEEE Std 1394-1995 IEEE Standard for a High Performance Serial Bus," August 30, 1996, which is incorporated by reference herein.
- the recorder interface 210 also supports isochronous communication compatible with the IEEE 1394 standard.
- the auxiliary interface 130 and the recorder interface 210 also include asynchronous or synchronous communication capabilities to communicate various commands and information between the microprocessor 140 and the video data stream manager 230.
- the auxiliary interface 130 and the recorder interface 210 include the capability to encrypt the real-time video signal 106 sent to the video data stream manager 230 to provide protection from unauthorized copying or transporting of stored video data by removing the digital video recorder 200 and reattaching it to a different set-top box 100.
- the auxiliary interface 130 and the recorder interface 210 advantageously include the capability to decrypt the recorded video signal 108 sent to the multiplexer 150 from the video data stream manager 230.
- the auxiliary interface 130 and the recorder interface 210 are compatible with DTLA ("Digital Transmission Licensing Administrator") copying protection utilizing authentication key exchange.
- DTLA copy protection is a well-known copy protection system, compatible with the LEEE 1394 standard, and is described in "Digital Transmission Content Protection Specification Revision 1.0," March 17, 1999, which is incorporated by reference herein.
- the recorder interface 210 Upon continuously receiving the real-time video signal 106 from the auxiliary interface 130, the recorder interface 210 generates a single program transport stream representation of the real-time video signal 106, which is transmitted to the video data stream manager 230.
- the video data stream manager 230 provides a first video stream 222 in response to the real-time video signal 106 to store a selected video segment on the disk 220.
- the disk 220 is a component of a rotating storage drive (e.g., a hard disk drive) compatible with the IEEE 1394 standard.
- the disk 220 can be a component of a writable digital video disk (DVD) drive, or of a drive that utilizes another technology that provides writable non- volatile storage.
- the microprocessor 140 Upon receiving a playback command from the user input 142, the microprocessor 140 transmits an appropriate playback command to the multiplexer 150 and to the video data stream manager 230, thereby terminating the real-time interval, and initiating a playback interval. Processing of the incoming broadcast signal 102 and the recording of the real-time video signal 106 continue during the playback interval as they had during the real-time interval.
- the video data stream manager 230 receives a second video stream 223 based on the selected video segment previously stored on the disk 220. The second video stream 223 is used by the video data stream manager 230 to generate a single program transport stream representation of the recorded video signal 108, which is transmitted to the recorder interface 210.
- the recorder interface 210 transmits the recorded video signal 108 to the multiplexer 150 via the auxiliary interface 130 of the set-top box 100.
- the multiplexer 150 transmits the recorded video signal 108 to the video output interface 120.
- the video output interface 120 transmits an output video data stream 104 to the display device, thereby permitting the user to view previously stored video images.
- the digital video recorder 200 does not require an additional video input interface capable of receiving the broadcast signal 102 or an additional video output interface capable of transmitting an output video data stream 104 directly to a display device 300.
- the digital video recorder 200 does not need a modem connected to the MSO to provide programming information. In this way, the redundancy of components and functions between the set-top box 100 and the digital video recorder 200 is reduced, thereby providing a more cost-effective alternative to currently available systems.
- FIG. 3 schematically illustrates one embodiment of the present invention compatible with an analog programming channel.
- the video input interface 110 comprises a video tuner 112 that receives the broadcast signal 102 and comprises an analog descrambler 115.
- the video tuner 112 selects one broadcast channel from the multiple broadcast channels contained in the broadcast signal 102 and transmits the selected broadcast channel to the analog descrambler 115.
- the analog descrambler 115 generates a baseband composite video representation of the real-time video signal 106.
- the analog descrambler 115 provides the capability to view broadcast channels which require descrambling (e.g., for premium channels which are only accessible by a user for an additional fee). Non-scrambled broadcast channels and non-accessible scrambled broadcast channels are transmitted through the analog descrambler 115 without descrambling. In embodiments where there is no need to descramble any of the broadcast channels, the analog descrambler 115 is not included in the set-top box 100, and the video tuner 112 generates a baseband composite video representation of the real-time video signal 106. The baseband composite video representation of the real-time video signal 106 generated by the analog descrambler 115 is transmitted to the auxiliary interface 130 and to a video digitizer 125 coupled to the OSD module 124 of the video output interface 120.
- the video digitizer 125 generates a digital representation of the real-time video signal 106 in response to the baseband composite video representation of the real-time video signal 106 from the analog descrambler 115.
- the digital representation of the real-time video signal 106 is then transmitted to the OSD module 124, which comprises a display multiplexer 151.
- the microprocessor 140 commands the display multiplexer 151 of the OSD module 124 to transmit the real-time video signal 106 to the NTSC encoder 126.
- the NTSC encoder 126 In response to the real-time video signal 106, the NTSC encoder 126 generates an output video data stream 104 which is transmitted to the display device 300.
- the baseband composite video representation of the real-time video signal 106 from the analog descrambler 115 is also transmitted to the auxiliary interface 130.
- the at least one auxiliary interface 130 comprises an analog auxiliary interface 132 which receives the baseband composite video representation of the real-time video signal 106.
- the at least one auxiliary interface 130 also comprises a digital auxiliary interface 134 that supports isochronous communication compatible with the IEEE 1394 standard and DTLA copy protection.
- the at least one recorder interface 210 of the digital video recorder 200 comprises an analog recorder interface 212 and a digital recorder interface 214 that supports isochronous communication compatible with the IEEE 1394 standard and DTLA copy protection.
- the analog auxiliary interface 132 continuously transmits the real-time video signal 106 via the analog recorder interface 212 to a MPEG encoder 216.
- the MPEG encoder In response to the continuously received real-time video signal 106, the MPEG encoder generates a single program transport stream representation of the real-time video signal 106, which is transmitted to the video data stream manager 230.
- the video data stream manager 230 In response to the real-time video signal 106, the video data stream manager 230 provides a first video stream 222 to store a selected video segment on the disk 220.
- the microprocessor 140 Upon receiving a playback command from the user input 142, the microprocessor 140 transmits an appropriate playback command to the multiplexer 150, to the display multiplexer 151, and to the video data stream manager 230, thereby terminating the real-time interval and initiating a playback interval.
- the processing of the incoming broadcast signal 102 and the recording of the real-time video signal 106 continue during the playback interval as they had during the real-time interval.
- the video data stream manager 230 receives a second video stream 223 based on the selected video segment previously stored on the disk 220.
- the second video stream 223 is used by the video data stream manager 230 to generate a single program transport stream representation of the recorded video signal 108, which is transmitted to the digital recorder interface 214.
- the digital recorder interface 214 transmits the recorded video signal 108 to the multiplexer 150 via the digital auxiliary interface 134 of the set-top box 100.
- the multiplexer 150 transmits the recorded video signal 108 to the video output interface 120.
- the video output interface 120 comprises the transport DEMUX / MPEG decoder 122, the OSD module 124, and the NTSC encoder 126.
- the display multiplexer 151 of the OSD module 124 responds to the recorded video signal 108 from the transport DEMUX / MPEG decoder 122 in generating the output video data stream 104 fransmitted to the display device 300, thereby permitting the user to view previously stored video images.
- the display multiplexer 151 in the OSD module 124 of the video output interface 120 performs the actual selection between the real-time video signal 106 and the recorded video signal 108.
- This preferred embodiment of the present invention reduces the redundancy of components and functions between the set-top box 100 and the digital video recorder 200, thereby providing a more cost-effective alternative to currently available systems.
- FIG 4 is a flow diagram in accordance with an embodiment of the present invention, in which the digital video recorder 200 is connectable to an auxiliary interface 130 of a set-top box 100 that provides video data stream to a display device 300 based on selection between recorded video signal 108 received from the digital video recorder 200 and a real-time video signal 106.
- the flow diagram is described with reference to the set-top box 100 and the digital video recorder 200 illustrated in Figure 1. Persons skilled in the art are able to recognize that, while the flow diagram illustrates a particular embodiment with steps in a particular order, other embodiments with different orders of steps are also compatible with the present invention.
- the recorder interface 210 of the digital video recorder 200 is connected to the auxiliary interface 130 of the set-top box 100.
- the set-top box includes the video input interface 110, the video output interface 120, the microprocessor 140 that generates a command in response to user input 142 that initiates a playback interval, and a multiplexer 150 coupled to the video output interface 120 and the microprocessor 140.
- the digital video recorder 200 includes a disk 220 and a video data stream controller 230.
- a step 420 the connection of the digital video recorder 200 to the set-top box 100 is recognized by the microprocessor 140 through communications between the microprocessor 140 and the video data sfream manager 230.
- this communication is asynchronous, and occurs via the auxiliary interface 130 and the recorder interface 210.
- the microprocessor 140 and the video data stream manager 230 utilize synchronous communication.
- the real-time video signal 106 is generated in response to the broadcast signal 102.
- the broadcast signal 102 is received by the video input interface 110 of the set- top box 100.
- the real-time video signal 106 is continuously provided to the multiplexer 150 and to the video data stream manager 230 of the digital video recorder 200.
- the real-time video signal 106 is continuously provided to the video data stream manager 230 via the auxiliary interface 130 and the recorder interface 210.
- the first video stream 222 is provided to store the selected video segment on the disk 220.
- the first video stream 222 is provided by the video data stream manager 230 in response to the real-time video signal 106.
- the video data stream manager 230 receives the second video stream 223 in response to the command from the microprocessor 140.
- the video data stream manager 230 receives the recorded video signal 108 in response to the second selected video stream 223.
- the playback interval is signified by a command from the microprocessor 140 in response to the user input 142.
- the recorded video signal 108 is provided to the multiplexer 150 via the recorder interface 210 and the auxiliary interface 130 during the playback interval.
- the multiplexer 150 selectively transmits the real-time video signal 106 during the real-time interval and selectively transmits the recorded video signal 108 during the playback interval.
- the output video data stream 104 is transmitted to the display device 300.
- the output video data stream 104 is generated by the video output interface 120 in response to the selectively transmitted video signal from the multiplexer 150.
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Abstract
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Priority Applications (1)
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AU2001271379A AU2001271379A1 (en) | 2000-06-28 | 2001-06-21 | Set-top box connectable to a digital video recorder via an auxiliary interface |
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US09/605,623 | 2000-06-28 | ||
US09/605,623 US6751402B1 (en) | 2000-06-28 | 2000-06-28 | Set-top box connectable to a digital video recorder via an auxiliary interface and selects between a recorded video signal received from the digital video recorder and a real-time video signal to provide video data stream to a display device |
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WO2002001867A1 true WO2002001867A1 (en) | 2002-01-03 |
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US (1) | US6751402B1 (en) |
AU (1) | AU2001271379A1 (en) |
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